4.8 Article

Probing the Oxygen Reduction Reaction Intermediates and Dynamic Active Site Structures of Molecular and Pyrolyzed Fe-N-C Electrocatalysts by In Situ Raman Spectroscopy

期刊

ACS CATALYSIS
卷 -, 期 -, 页码 7811-7820

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acscatal.2c00771

关键词

Fe-N-C electrocatalysts; ORR active sites; in situ Raman spectroscopy; rate-determining step; structural switching

资金

  1. National Natural Science Funds of China [22102083, 52173222]
  2. China Postdoctoral Science Foundation [2021M691752]
  3. Local Innovative and Research Teams Project of Guangdong Pearl River Talents Program [2017BT01N111]
  4. Shenzhen Science and Technology Innovation Committee [WDZ20200819115243002, JCYJ20190809172617313]

向作者/读者索取更多资源

This study reveals the identification of ORR intermediates and RDSs at different active sites through Raman spectroscopy of FeN4 active sites, and the dynamic structural changes of FeN4 during ORR catalysis. It also confirms the role of two types of C-N sites in pyrolyzed Fe-N-C catalysts, showing different ORR intermediates and RDSs.
While FeN4 species are widely suggested as the active sites of noble-metal-free Fe-N-C oxygen reduction reaction (ORR) electrocatalysts, the ORR mechanism, particularly the rate-determining steps (RDSs) at the Fe centers, and the likely contribution of co-existed C-N active site remain disputed. Moreover, the dynamic structures of the FeN4 active sites during ORR electrocatalysis also remain elusive. By in situ (isotope-labeled) Raman spectroscopy of molecular Fe phthalocyanine (FePc) model catalysts and pyrolyzed Fe-N-C catalysts, we achieve direct, simultaneous spectral identification of the ORR intermediates/RDSs at different active sites under different pH conditions, from which their intrinsic activities and ORB. mechanisms can be quantitatively decoupled. Besides the single-atomic Fe-N-x site, two kinds of C-N sites were pinpointed and clarified as separate active sites in pyrolyzed Fe-N-C catalysts, showing different ORR intermediates (*O-2(-) and *OOH) and RDSs. Furthermore, from the FePc model catalyst, we reveal a pH-dependent structural switching of the FeN4 between planar and non-planar structures during ORR electrocatalysis, which provides important insights into their pH-dependent ORR activity (RDS) and stability.

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